FRACTURE DAMAGE ANALYSIS OF SILICON CARBIDE CERAMIC CYLINDRICAL SHELLS BASED ON STATE-BASED PERIDYNAMICS

被引:0
|
作者
Jiang L. [1 ]
Shen K. [1 ]
Pan G. [1 ]
Huang Y. [2 ]
机构
[1] School of Marine Science and Technology, Northwestern Polytechnical University, Xi’an
[2] Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai
关键词
ceramic cylindrical shell; critical energy release rate; fracture damage; state-based peridynamic theory;
D O I
10.6052/0459-1879-23-411
中图分类号
学科分类号
摘要
Silicon carbide (SiC) ceramic material have excellent mechanical properties and is widely used in various engineering components. However, SiC ceramic is an inherently fragile material that can cause tremendous hazards when brittle fracture occurs. Therefore, accurate prediction of its fracture behavior is extremely important. In order to investigate the fracture damage mechanism of SiC ceramic shells subjected to external loads, this paper firstly obtained the critical energy release rate of SiC ceramic through quasi-static tensile and compression experiments, and an ordinary state-based peridynamic model that is appropriate for tensile and compression damage analysis is established. Then, the numerical simulation of the fracture damage behavior of ceramic shells under linearly increasing external loads is implemented by programming in Fortran language, the correctness of the constructed model is confirmed by comparing the simulation value that is achieved with the theoretical predicted value. At last, the fracture damage propagation evolution process of the shells is revealed in detail. The simulation results show that the initial damage zones originate from the compression fracture of the inner surface of the shell, and uniformly distributed at 90° along the circumferential direction. With the gradual increase of the external loads, the tensile fracture damage zones appear on the external surface of cylinder, and the damage zones on the inner and outer surfaces first extend along the circumferential direction, then slowly propagate to the middle surface of the shell, and penetrate the whole cylinder in the thickness direction. Following that, two mixed zones of tensile-compressive damage appear in the axial direction of the shell, which extend along the axial direction and ultimately divide the shell into four fracture zones. The constructed model can successfully describe the fracture damage evolution process of the SiC ceramic structures under intricate loads, while compensating for the drawbacks of state-based peridynamics in damage analysis. © 2024 Chinese Society of Theoretical and Applied Mechanics. All rights reserved.
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页码:991 / 1005
页数:14
相关论文
共 42 条
  • [1] Gordon WH., Toward understanding the failure mechanism in ceramic vessels under external hydrostatic pressure, Marine Technology Society Journal, 55, 5, pp. 64-69, (2021)
  • [2] Shen KC, Jiang LL, Pan G, Et al., Buckling and failure behavior of the silicon carbide (SiC) ceramic cylindrical shell under hydrostatic pressure, Ocean Engineering, 287, (2023)
  • [3] Wang Z, Li P, Song W., Inelastic deformation micromechanism and modified fragmentation model for silicon carbide under dynamic compression, Materials & Design, 157, pp. 244-250, (2018)
  • [4] Zinszner J, Forquin P, Rossiquet G., Experimental and numerical analysis of the dynamic fragmentation in a SiC ceramic under impact, International Journal of Impact Engineering, 76, pp. 9-19, (2015)
  • [5] Zhang QY, Jin XQ, Zhou FH., Explosive fragmentations of alumina (Al<sub>2</sub>O<sub>3</sub>) under quasistatic compressive loading, EPJ Web of Conferences. EDP Sciences, 94, (2015)
  • [6] Yu Y, Wang W, He H, Et al., Mesoscopic deformation features of shocked porous ceramic: Polycrystalline modeling and experimental observations, Journal of Applied Physics, 117, 12, (2015)
  • [7] Lee MY, Brannon RM, Bronowski DR., Uniaxial and triaxial compression tests of silicon carbide ceramics under quasi-static loading condition, (2005)
  • [8] Zheng J, Ji M, Zaiemyekeh Z, Et al., Strain-rate-dependent compressive and compression-shear response of an alumina ceramic, Journal of the European Ceramic Society, 42, 16, pp. 7516-7527, (2022)
  • [9] Bao K, Zhang XF, Wang GJ, Et al., Damage characteristics of YAG transparent ceramics under different loading conditions, Defence Technology, 18, 8, pp. 1394-1404, (2022)
  • [10] Tan Rui, Li Haiyang, Huang Junyu, Investigations on the fragment morphology and fracture mechanisms of Al<sub>2</sub>O<sub>3</sub> ceramics under dynamic and quasi-static compression, Explosion and Shock Waves, 40, 2, pp. 50-59, (2020)